Perception of a divergent family of phytocytokines by the Arabidopsis receptor kinase MIK2
暂无分享,去创建一个
[1] F. Takken,et al. The Arabidopsis leucine-rich repeat receptor-like kinase MIK2 is a crucial component of early immune responses to a fungal-derived elicitor. , 2020, The New phytologist.
[2] D. Coleman-Derr,et al. Nematode-encoded RALF Peptide Mimics Facilitate Parasitism of Plants through the FERONIA Receptor Kinase. , 2020, Molecular plant.
[3] John T Jones,et al. Signatures of adaptation to a monocot host in the plant-parasitic cyst nematode Heterodera sacchari. , 2020, The Plant journal : for cell and molecular biology.
[4] K. Hammond-Kosack,et al. Functional evaluation of a homologue of plant rapid alkalinisation factor (RALF) peptides in Fusarium graminearum , 2020, Fungal biology.
[5] C. Whitewoods,et al. Evolution of CLE peptide signalling. , 2020, Seminars in cell & developmental biology.
[6] J. Fletcher. Recent Advances in Arabidopsis CLE Peptide Signaling. , 2020, Trends in plant science.
[7] V. Ranwez,et al. Origin and Diversity of Plant Receptor-Like Kinases. , 2020, Annual review of plant biology.
[8] F. Bakker,et al. Leucine‐rich repeat receptor‐like kinase II phylogenetics reveals five main clades throughout the plant kingdom , 2020, The Plant journal : for cell and molecular biology.
[9] Jia Li,et al. Paired Receptor and Coreceptor Kinases Perceive Extracellular Signals to Control Plant Development1[OPEN] , 2020, Plant Physiology.
[10] S. Fujita,et al. Molecular mechanism for the recognition of sequence-divergent CIF peptides by the plant receptor kinases GSO1/SGN3 and GSO2 , 2019, Proceedings of the National Academy of Sciences.
[11] F. White. Faculty Opinions recommendation of Receptor Kinases in Plant-Pathogen Interactions: More Than Pattern Recognition. , 2019, Faculty Opinions – Post-Publication Peer Review of the Biomedical Literature.
[12] H. Gu,et al. Cysteine-rich peptides promote interspecific genetic isolation in Arabidopsis , 2019, Science.
[13] K. Gevaert,et al. Look Closely, the Beautiful May Be Small: Precursor-Derived Peptides in Plants. , 2019, Annual review of plant biology.
[14] G. Bécard,et al. Arbuscular mycorrhizal fungi possess a CLAVATA3/embryo surrounding region-related gene that positively regulates symbiosis. , 2019, The New phytologist.
[15] S. Aubourg,et al. The SCOOP12 peptide regulates defense response and root elongation in Arabidopsis thaliana , 2019, Journal of experimental botany.
[16] Artemis Perraki,et al. Phosphocode-dependent functional dichotomy of a common co-receptor in plant signaling , 2018, Nature.
[17] C. Zipfel,et al. The plant cell wall integrity maintenance and immune signaling systems cooperate to control stress responses in Arabidopsis thaliana , 2018, Science Signaling.
[18] A. Boisson-Dernier,et al. Plant Malectin-Like Receptor Kinases: From Cell Wall Integrity to Immunity and Beyond. , 2018, Annual review of plant biology.
[19] Yujing Sun,et al. Leucine-rich repeat receptor-like gene screen reveals that Nicotiana RXEG1 regulates glycoside hydrolase 12 MAMP detection , 2018, Nature Communications.
[20] J. Chai,et al. Structural basis for receptor recognition of pollen tube attraction peptides , 2017, Nature Communications.
[21] T. Nürnberger,et al. Sensing Danger: Key to Activating Plant Immunity. , 2017, Trends in plant science.
[22] P. He,et al. From Chaos to Harmony: Responses and Signaling upon Microbial Pattern Recognition. , 2017, Annual review of phytopathology.
[23] C. Zipfel,et al. Function, Discovery, and Exploitation of Plant Pattern Recognition Receptors for Broad-Spectrum Disease Resistance. , 2017, Annual review of phytopathology.
[24] Sudhir Kumar,et al. TimeTree: A Resource for Timelines, Timetrees, and Divergence Times. , 2017, Molecular biology and evolution.
[25] Iko T. Koevoets,et al. The Arabidopsis leucine-rich repeat receptor kinase MIK2/LRR-KISS connects cell wall integrity sensing, root growth and response to abiotic and biotic stresses , 2017, PLoS genetics.
[26] U. Hohmann,et al. The Structural Basis of Ligand Perception and Signal Activation by Receptor Kinases. , 2017, Annual review of plant biology.
[27] Jian-Min Zhou,et al. Receptor Kinases in Plant-Pathogen Interactions: More Than Pattern Recognition[OPEN] , 2017, Plant Cell.
[28] David Turrà,et al. A fungal pathogen secretes plant alkalinizing peptides to increase infection , 2016, Nature Microbiology.
[29] L. Hothorn,et al. Mechanistic insight into a peptide hormone signaling complex mediating floral organ abscission , 2016, eLife.
[30] Hidenori Takeuchi,et al. Tip-localized receptors control pollen tube growth and LURE sensing in Arabidopsis , 2016, Nature.
[31] A. Cheung,et al. Plant biology: LURE is bait for multiple receptors , 2016, Nature.
[32] L. Fokkens,et al. UvA-DARE ( Digital Academic Repository ) Natural variation in rosette size under salt stress conditions corresponds to developmental differences between Arabidopsis accessions and allelic variation in the LRR-KISS gene , 2016 .
[33] Tong Wang,et al. A receptor heteromer mediates the male perception of female attractants in plants , 2016, Nature.
[34] G. Droc,et al. Evolutionary Dynamics of the Leucine-Rich Repeat Receptor-Like Kinase (LRR-RLK) Subfamily in Angiosperms1[OPEN] , 2016, Plant Physiology.
[35] G. Droc,et al. Evolutionary dynamics of the Leucine-Rich Repeats Receptor-Like Kinase (LRR-RLK) subfamily in angiosperms. , 2016 .
[36] T. Boller,et al. Quo vadis, Pep? Plant elicitor peptides at the crossroads of immunity, stress, and development. , 2015, Journal of experimental botany.
[37] D. Scheel,et al. Microbe-associated molecular pattern-induced calcium signaling requires the receptor-like cytoplasmic kinases, PBL1 and BIK1 , 2014, BMC Plant Biology.
[38] D. MacLean,et al. The calcium-dependent protein kinase CPK28 buffers plant immunity and regulates BIK1 turnover. , 2014, Cell host & microbe.
[39] Jonathan D. G. Jones,et al. Direct regulation of the NADPH oxidase RBOHD by the PRR-associated kinase BIK1 during plant immunity. , 2014, Molecular cell.
[40] She Chen,et al. The FLS2-associated kinase BIK1 directly phosphorylates the NADPH oxidase RbohD to control plant immunity. , 2014, Cell host & microbe.
[41] B. Bobay,et al. Solution NMR studies of the plant peptide hormone CEP inform function , 2013, FEBS letters.
[42] Yun-Ru Chen,et al. Correction: BTI-Tnao38, a new cell line derived from Trichoplusia ni, is permissive for AcMNPV infection and produces high levels of recombinant proteins , 2012, BMC Biotechnology.
[43] Alexandra M. E. Jones,et al. The Arabidopsis Leucine-Rich Repeat Receptor–Like Kinases BAK1/SERK3 and BKK1/SERK4 Are Required for Innate Immunity to Hemibiotrophic and Biotrophic Pathogens[W] , 2011, Plant Cell.
[44] Alexandra M. E. Jones,et al. Phosphorylation-Dependent Differential Regulation of Plant Growth, Cell Death, and Innate Immunity by the Regulatory Receptor-Like Kinase BAK1 , 2011, PLoS genetics.
[45] Xiaojun Ding,et al. Receptor-like cytoplasmic kinases integrate signaling from multiple plant immune receptors and are targeted by a Pseudomonas syringae effector. , 2010, Cell host & microbe.
[46] Ping He,et al. Differential innate immune signalling via Ca2+ sensor protein kinases , 2010, Nature.
[47] C. Zipfel,et al. Control of the pattern‐recognition receptor EFR by an ER protein complex in plant immunity , 2009, The EMBO journal.
[48] She Chen,et al. Regulation of cell death and innate immunity by two receptor-like kinases in Arabidopsis. , 2009, Cell host & microbe.
[49] G. Pearce,et al. An endogenous peptide signal in Arabidopsis activates components of the innate immune response. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[50] T. Boller,et al. Perception of the Bacterial PAMP EF-Tu by the Receptor EFR Restricts Agrobacterium-Mediated Transformation , 2006, Cell.
[51] C. Pikaard,et al. Gateway-compatible vectors for plant functional genomics and proteomics. , 2006, The Plant journal : for cell and molecular biology.
[52] K. Niehaus,et al. The N Terminus of Bacterial Elongation Factor Tu Elicits Innate Immunity in Arabidopsis Plants , 2004, The Plant Cell Online.
[53] S. Cutler,et al. Random GFP::cDNA fusions enable visualization of subcellular structures in cells of Arabidopsis at a high frequency. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[54] T. Boller,et al. Plants have a sensitive perception system for the most conserved domain of bacterial flagellin. , 1999, The Plant journal : for cell and molecular biology.
[55] S. Clough,et al. Floral dip: a simplified method for Agrobacterium-mediated transformation of Arabidopsis thaliana. , 1998, The Plant journal : for cell and molecular biology.